Showing posts with label kerr-effect spectroscopy. Show all posts
Showing posts with label kerr-effect spectroscopy. Show all posts

Thursday, June 19, 2014

Abstract-Terahertz Kerr effect in gallium phosphide crystal



M. Cornet, J. Degert, E. Abraham, and E. Freysz  »View Author Affiliations
JOSA B, Vol. 31, Issue 7, pp. 1648-1652 (2014)
http://dx.doi.org/10.1364/JOSAB.31.001648

We report on the observation of the Kerr effect induced by an intense terahertz pulse in a 100 gallium phosphide crystal. The temporal and angular behaviors of the phase retardation have been measured and agree well with theoretical predictions. From these measurements, we extracted the two nonzero tensor elements of the third-order response function of the crystal in the terahertz range.
© 2014 Optical Society of America

Wednesday, August 7, 2013

Abstract-Ultrabroadband terahertz spectroscopies of biomolecules and water

Turton, D., Harwood, T., Lapthorn, A., Ellis, E., and Wynne, K. (2013) Ultrabroadband terahertz spectroscopies of biomolecules and water. Proc. SPIE, 8623 (862303). ISSN 1996-756X (doi:10.1117/12.2003796)
We describe the use of a range of modern spectroscopic techniques—from terahertz time-domain spectroscopy (THz- TDS) to high dynamic-range femtosecond optical Kerr-effect (OKE) spectroscopy—to study the interaction of proteins, peptides, and other biomolecules with the aqueous solvent. Chemical reactivity in proteins requires fast picosecond fluctuations to reach the transition state, to dissipate energy, and (possibly) to reduce the width and height of energy barriers along the reaction coordinate. Such motions are linked with the structure and dynamics of the aqueous solvent making hydration critical to function. These dynamics take place over a huge range of timescales: from the nanosecond timescale of diffusion of water molecules in the first solvation shell of proteins, picosecond motions of amino-acid side chains, and sub-picosecond librational and phonon-like motions of water. It is shown that a large range of frequencies from MHz to THz is accessible directly using OKE resulting in the reduced anisotropic Raman spectrum and by using a combination of techniques including THz-TDS resulting in the dielectric spectrum. Using these techniques, we can now observe very significant differences in the spectra of proteins in aqueous solvent in the 3-30 THz range and more subtle differences at lower frequencies (10 GHz-3 THz). © (2013) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE).